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通过单粒子测温研究双金属界面设计对等离子体 Au/Pd 纳米结构中热生成的影响。

Impact of bimetallic interface design on heat generation in plasmonic Au/Pd nanostructures studied by single-particle thermometry.

机构信息

Nanoinstitute Munich, Faculty of Physics, Ludwig-Maximilians-Universität München, 80539, München, Germany.

Centro de Investigaciones en Bionanociencias (CIBION), Consejo Nacional de Investigaciones Científicas y Técnicas (CONICET), C1425FQD Ciudad Autónoma de Buenos Aires, Buenos Aires, Argentina.

出版信息

Nat Commun. 2023 Jun 27;14(1):3813. doi: 10.1038/s41467-023-38982-9.

Abstract

Localized surface plasmons are lossy and generate heat. However, accurate measurement of the temperature of metallic nanoparticles under illumination remains an open challenge, creating difficulties in the interpretation of results across plasmonic applications. Particularly, there is a quest for understanding the role of temperature in plasmon-assisted catalysis. Bimetallic nanoparticles combining plasmonic with catalytic metals are raising increasing interest in artificial photosynthesis and the production of solar fuels. Here, we perform single-particle thermometry measurements to investigate the link between morphology and light-to-heat conversion of colloidal Au/Pd nanoparticles with two different configurations: core-shell and core-satellite. It is observed that the inclusion of Pd as a shell strongly reduces the photothermal response in comparison to the bare cores, while the inclusion of Pd as satellites keeps photothermal properties almost unaffected. These results contribute to a better understanding of energy conversion processes in plasmon-assisted catalysis.

摘要

局域表面等离激元是有损耗的,并会产生热量。然而,在光照下测量金属纳米粒子的温度仍然是一个未解决的挑战,这给等离子体应用中的结果解释带来了困难。特别是,人们一直在努力理解温度在等离子体辅助催化中的作用。结合了等离子体和催化金属的双金属纳米粒子在人工光合作用和太阳能燃料的生产中引起了越来越多的兴趣。在这里,我们进行了单粒子测温测量,以研究具有两种不同构型的胶体 Au/Pd 纳米粒子的形态与光热转换之间的关系:核壳和核卫星。观察到,与裸核相比,Pd 作为壳层的存在强烈降低了光热响应,而 Pd 作为卫星的存在几乎不影响光热性能。这些结果有助于更好地理解等离子体辅助催化中的能量转换过程。

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